Reshape an array in NumPy
Question:
Consider an array of the following form (just an example):
[[ 0 1]
[ 2 3]
[ 4 5]
[ 6 7]
[ 8 9]
[10 11]
[12 13]
[14 15]
[16 17]]
It’s shape is [9,2]. Now I want to transform the array so that each column becomes a shape [3,3], like this:
[[ 0 6 12]
[ 2 8 14]
[ 4 10 16]]
[[ 1 7 13]
[ 3 9 15]
[ 5 11 17]]
The most obvious (and surely “non-pythonic”) solution is to initialise an array of zeroes with the proper dimension and run two for-loops where it will be filled with data. I’m interested in a solution that is language-conform…
Answers:
a = np.arange(18).reshape(9,2)
b = a.reshape(3,3,2).swapaxes(0,2)
# a:
array([[ 0, 1],
[ 2, 3],
[ 4, 5],
[ 6, 7],
[ 8, 9],
[10, 11],
[12, 13],
[14, 15],
[16, 17]])
# b:
array([[[ 0, 6, 12],
[ 2, 8, 14],
[ 4, 10, 16]],
[[ 1, 7, 13],
[ 3, 9, 15],
[ 5, 11, 17]]])
numpy has a great tool for this task (“numpy.reshape”) link to reshape documentation
a = [[ 0 1]
[ 2 3]
[ 4 5]
[ 6 7]
[ 8 9]
[10 11]
[12 13]
[14 15]
[16 17]]
`numpy.reshape(a,(3,3))`
you can also use the “-1” trick
`a = a.reshape(-1,3)`
the “-1” is a wild card that will let the numpy algorithm decide on the number to input when the second dimension is 3
so yes.. this would also work:
a = a.reshape(3,-1)
and this:
a = a.reshape(-1,2)
would do nothing
and this:
a = a.reshape(-1,9)
would change the shape to (2,9)
There are two possible result rearrangements (following example by @eumiro). Einops package provides a powerful notation to describe such operations non-ambigously
>> a = np.arange(18).reshape(9,2)
# this version corresponds to eumiro's answer
>> einops.rearrange(a, '(x y) z -> z y x', x=3)
array([[[ 0, 6, 12],
[ 2, 8, 14],
[ 4, 10, 16]],
[[ 1, 7, 13],
[ 3, 9, 15],
[ 5, 11, 17]]])
# this has the same shape, but order of elements is different (note that each paer was trasnposed)
>> einops.rearrange(a, '(x y) z -> z x y', x=3)
array([[[ 0, 2, 4],
[ 6, 8, 10],
[12, 14, 16]],
[[ 1, 3, 5],
[ 7, 9, 11],
[13, 15, 17]]])
Consider an array of the following form (just an example):
[[ 0 1]
[ 2 3]
[ 4 5]
[ 6 7]
[ 8 9]
[10 11]
[12 13]
[14 15]
[16 17]]
It’s shape is [9,2]. Now I want to transform the array so that each column becomes a shape [3,3], like this:
[[ 0 6 12]
[ 2 8 14]
[ 4 10 16]]
[[ 1 7 13]
[ 3 9 15]
[ 5 11 17]]
The most obvious (and surely “non-pythonic”) solution is to initialise an array of zeroes with the proper dimension and run two for-loops where it will be filled with data. I’m interested in a solution that is language-conform…
a = np.arange(18).reshape(9,2)
b = a.reshape(3,3,2).swapaxes(0,2)
# a:
array([[ 0, 1],
[ 2, 3],
[ 4, 5],
[ 6, 7],
[ 8, 9],
[10, 11],
[12, 13],
[14, 15],
[16, 17]])
# b:
array([[[ 0, 6, 12],
[ 2, 8, 14],
[ 4, 10, 16]],
[[ 1, 7, 13],
[ 3, 9, 15],
[ 5, 11, 17]]])
numpy has a great tool for this task (“numpy.reshape”) link to reshape documentation
a = [[ 0 1]
[ 2 3]
[ 4 5]
[ 6 7]
[ 8 9]
[10 11]
[12 13]
[14 15]
[16 17]]
`numpy.reshape(a,(3,3))`
you can also use the “-1” trick
`a = a.reshape(-1,3)`
the “-1” is a wild card that will let the numpy algorithm decide on the number to input when the second dimension is 3
so yes.. this would also work:
a = a.reshape(3,-1)
and this:
a = a.reshape(-1,2)
would do nothing
and this:
a = a.reshape(-1,9)
would change the shape to (2,9)
There are two possible result rearrangements (following example by @eumiro). Einops package provides a powerful notation to describe such operations non-ambigously
>> a = np.arange(18).reshape(9,2)
# this version corresponds to eumiro's answer
>> einops.rearrange(a, '(x y) z -> z y x', x=3)
array([[[ 0, 6, 12],
[ 2, 8, 14],
[ 4, 10, 16]],
[[ 1, 7, 13],
[ 3, 9, 15],
[ 5, 11, 17]]])
# this has the same shape, but order of elements is different (note that each paer was trasnposed)
>> einops.rearrange(a, '(x y) z -> z x y', x=3)
array([[[ 0, 2, 4],
[ 6, 8, 10],
[12, 14, 16]],
[[ 1, 3, 5],
[ 7, 9, 11],
[13, 15, 17]]])